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基于实例的模型解释了在视动技能中多样化练习的好处。

An instance-based model account of the benefits of varied practice in visuomotor skill.

机构信息

Indiana University, Bloomington, United States of America.

Indiana University, Bloomington, United States of America.

出版信息

Cogn Psychol. 2022 Sep;137:101491. doi: 10.1016/j.cogpsych.2022.101491. Epub 2022 Jul 25.

Abstract

Exposing learners to variability during training has been demonstrated to improve performance in subsequent transfer testing. Such variability benefits are often accounted for by assuming that learners are developing some general task schema or structure. However much of this research has neglected to account for differences in similarity between varied and constant training conditions. In a between-groups manipulation, we trained participants on a simple projectile launching task, with either varied or constant conditions. We replicate previous findings showing a transfer advantage of varied over constant training. Furthermore, we show that a standard similarity model is insufficient to account for the benefits of variation, but, if the model is adjusted to assume that varied learners are tuned towards a broader generalization gradient, then a similarity-based model is sufficient to explain the observed benefits of variation. Our results therefore suggest that some variability benefits can be accommodated within instance-based models without positing the learning of some schemata or structure.

摘要

在培训期间让学习者接触到多样性已被证明可以提高后续转移测试中的表现。这种多样性的好处通常归因于假设学习者正在发展某种一般性的任务模式或结构。然而,这项研究大多忽略了在变化和恒定训练条件之间的相似性差异。在组间操作中,我们在一个简单的抛射物发射任务上对参与者进行训练,有变化或恒定的条件。我们复制了之前的发现,表明变化训练比恒定训练有转移优势。此外,我们表明,标准的相似性模型不足以解释变化的好处,但是,如果模型被调整为假设变化的学习者调谐到更广泛的泛化梯度,那么基于相似性的模型足以解释观察到的变化的好处。因此,我们的结果表明,一些变化的好处可以在不假设学习某些模式或结构的情况下,被实例基础模型所容纳。

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